Chemistry - Empirical formula

[Runner]

Hello all, I have some problems with a question and was wondering if there is a brilliant mind out there that could help. It would be much appreciated, thank you.

 

The question states:

 

A chloride of phosphorus, A, contains 22.5% P by mass. Reaction of this compound with more chlorine gives another chloride, B, containing 14.9%

Calculate the empirical formulae of the two chlorides.

[JaKiri]

Divide the % by the RAM. Divide by the lower value. Cancel any common factors.

 

Tadaa.

[Runner]

MrL_JaKiri said in post #2 :

Divide the % by the RAM. Divide by the lower value. Cancel any common factors.

 

Tadaa.

 

I know how to calculate the empirical formula given the percentage masses; I’m just not sure what the hell is going on in the question. *Very confused*

 

Thanks for your help anyway.

[JaKiri]

You have Phosphorus. You have Chlorine. Phosphorus makes up 22.5% by mass. How much by mass do you think chlorine makes up?

[YT2095]

it sounds like one is Dimer and the other Trimer.

 

but either way, like Mr_L says, you can still work it`s molarity out quite easily

[Runner]

I think this is how it goes..

 

P Cl

22.5 100-22.5= 77.5%

 

so.

 

22.5/31=0.726 77.5/35.5=2.18

 

0.726/0.726=1 2.18/0.726=3

 

PCL3

 

Second part

 

P Cl

14.9 100-14.9=85.1

 

so

 

14.9/31=0.480 85.1/35.5=2.39

 

PCL5

[JaKiri]

Yep.

 

except the L is lower case

[Runner]

Thank you for your help.

[JaKiri]

np

[Runner]

Could someone please help, these calculations are driving me insane. BTW, this has nothing to do with calculating the empirical formula, I thought it would have been a waste of space if I had started a new thread.

 

Here goes...

 

Magnesium oxide is not very soluble in water, and is difficult to titrate directly. Its purity can be determined by use of a 'back titration' method. 4.06g of impure magnesium oxide was completely dissolved in 100cm^3 of hydrochloric acid, of concentration 2.0mol/dm^3 (in excess). The acid required 19.7cm^3 of sodium hydroxide (0.20mol/dm^3) for neutralisation. This 2nd titration is called a 'back-titration', and is used to determine the unreacted acid.

 

1.)Calculate the moles of HCl reacting with MgO.

 

2.)Calculate the mass of MgO that reacted with the initial HCl, hence the % purity of the MgO

[neo_maya]

Runner said in post #10 :

Could someone please help, these calculations are driving me insane. BTW, this has nothing to do with calculating the empirical formula, I thought it would have been a waste of space if I had started a new thread.

 

Here goes...

 

Magnesium oxide is not very soluble in water, and is difficult to titrate directly. Its purity can be determined by use of a 'back titration' method. 4.06g of impure magnesium oxide was completely dissolved in 100cm^3 of hydrochloric acid, of concentration 2.0mol/dm^3 (in excess). The acid required 19.7cm^3 of sodium hydroxide (0.20mol/dm^3) for neutralisation. This 2nd titration is called a 'back-titration', and is used to determine the unreacted acid.

 

1.)Calculate the moles of HCl reacting with MgO.

 

2.)Calculate the mass of MgO that reacted with the initial HCl, hence the % purity of the MgO

 

 

 

I am not good in chemistry ( I am not good in anything, but here goes a small effort)

________________________________________________

 

Given,

 

Used NaOH = .2M 19.7 cm3

= .2M 19.7 cm3 HCl

= 1M 3.94 cm3 HCl

= 2M 7.88 cm3 HCl

 

____________________________________

 

So, Total HCl = 2M 100 cm3

Used with NaOH = 2M 7.88 cm3

Used with MgO = 2M 92.12 cm3

____________________________________

 

So, Used with MgO

 

Mole of HCl = (92.12/1000) * 2 mole

HCl mass = (92.12/1000) *36.5 * 2

= 6.72476 gm

____________________________________

 

MgO + 2HCl = MgCl2 + H2O

40gm 73gm

 

So,

 

73 gm HCl reacts with MgO of = 40 gm

6.72476 gm HCl reacts with MgO of = 3.6848 gm

 

____________________________________

 

Purity of MgO = (3.6848/4.06) * 100

= 90.75 %

 

____________________________________

 

Answer : 1. 6.72476 gm

2. 3.6848 gm

3. 90.75 gm

[neo_maya]

Sorry, Couldn't find the equivalence sign. And couldn't find the subscript or superscript options either. So, please don't mind.

 

Someone please check it. It's sure to have something wrong somewhere. Or, there is a huge chance that the entire procedure is wrong.

 

Oops, sorry about the third answer. It should have been 90.75 %

[Runner]

neo_maya said in post #12 :

Sorry, Couldn't find the equivalence sign. And couldn't find the subscript or superscript options either. So, please don't mind.

 

Someone please check it. It's sure to have something wrong somewhere. Or, there is a huge chance that the entire procedure is wrong.

 

Oops, sorry about the third answer. It should have been 90.75 %

 

Good try.

 

I manage to work it out after spending almost 10 hours on it.

 

(i) MgO + 2HCl ==> MgCl2 + 2H2O

 

(ii) NaOH + HCl ==> NaCl + H2O

 

moles of hydrochloric acid added to the magnesium oxide = 100 ÷ 1000 x 2 = 0.20 mol HCl

 

 

moles of excess hydrochloric acid titrated = 19.7 ÷ 1000 x 0.2 = 0.00394 mol HCl (mole ratio NaOH:HCl is 1:1 from equation (ii))

 

moles of hydrochloric acid reacting with the magnesium oxide = 0.20 - 0.00394 = 0.196

 

mole MgO reacted = 0.196 ÷ 2 = 0.098 (1: 2 in equation (i)), the formula mass of MgO = 40.3, so mass of MgO reacting with acid = 0.098 x 40.3 = 3.95g, % purity = 3.95 ÷ 4.06 x 100 = 97.3%

[neo_maya]

neo_maya said in post #11 :

 

 

 

I am not good in chemistry ( I am not good in anything, but here goes a small effort)

________________________________________________

 

Given,

 

Used NaOH = .2M 19.7 cm3

= .2M 19.7 cm3 HCl

= 1M 3.94 cm3 HCl

= 2M 7.88 cm3 HCl

 

____________________________________

 

So, Total HCl = 2M 100 cm3

Used with NaOH = 2M 7.88 cm3

Used with MgO = 2M 92.12 cm3

____________________________________

 

So, Used with MgO

 

Mole of HCl = (92.12/1000) * 2 mole

HCl mass = (92.12/1000) *36.5 * 2

= 6.72476 gm

____________________________________

 

MgO + 2HCl = MgCl2 + H2O

40gm 73gm

 

So,

 

73 gm HCl reacts with MgO of = 40 gm

6.72476 gm HCl reacts with MgO of = 3.6848 gm

 

____________________________________

 

Purity of MgO = (3.6848/4.06) * 100

= 90.75 %

 

____________________________________

 

Answer : 1. 6.72476 gm

2. 3.6848 gm

3. 90.75 gm

 

 

 

____________________________________________________

____________________________________________________

________________________________________________________________________________________________________

 

I knew it - I had to make a mistake and be the greatest jerk of all time. Just a calculation error. Sorry. Instead of dividing, I multiplied by mistake. I think I have marked the line in blue. Sorry .

________________________________________________

Given,

 

Used NaOH = .2M 19.7 cm3

= .2M 19.7 cm3 HCl

= 1M 3.94 cm3 HCl

= 2M 7.88 cm3 HCl

The right line is -

= 2 M 1.97 cm3 HCl

____________________________________

 

So, Total HCl = 2M 100 cm3

Used with NaOH = 2M 1.97 cm3

Used with MgO = 2M 98.03 cm3

____________________________________

 

So, Used with MgO

 

Mole of HCl = (98.03/1000) * 2 mole

HCl mass = (98.03/1000) *36.5 * 2

= 7.15619 gm

____________________________________

 

MgO + 2HCl = MgCl2 + H2O

40.3 gm 73gm

 

So,

 

73 gm HCl reacts with MgO of = 40.3 gm

7.15619 gm HCl reacts with MgO of = 3.95 gm

 

____________________________________

 

Purity of MgO = (3.95/4.06) * 100

= 97.305 %

 

____________________________________

 

Answer : 1. 7.15619gm

2. 3.95 gm

3. 97.305 %

[neo_maya]

 

 

 

 

 

 

I just wish that someday - ( God knows when ) - I will become a lesser jerk.